IP Library Granted Patent US 8,504,259
Granted Patent B2
US 8,504,259 · App. 12/234,637 · Granted Aug 6, 2013

Method for determining inertia effects for a hybrid powertrain system

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Quick Facts
Patent No.
US 8,504,259
App. No.
12/234,637
Granted
Aug 6, 2013
Kind
B2
Abstract

A method for controlling a hybrid powertrain system based upon determined inertial effects for a continuously variable operating range state includes monitoring an operator torque request and a rotational speed of the output member, determining an inertial effect on an input speed of the input member for a continuously variable operating range state, and controlling motor torque outputs from the electric machines to meet the operator torque request based upon the inertial effect on the input speed of the input member.

Claims (83)

1. Method for controlling a hybrid transmission including torque generating devices and an energy storage device connected thereto, the hybrid transmission device configured to transfer power between an input member of the hybrid transmission, an output member of the hybrid transmission connected to a driveline, and the torque generating devices, the method comprising:

operating the hybrid transmission comprising a planetary gear set in a continuously variable operating range state;

monitoring an operator torque request and a rotational speed of the output member of the hybrid transmission connected to the driveline;

providing a first tractive torque from a first of the torque generating devices through the input member and the hybrid transmission to the driveline;

providing a second tractive torque from a second of the torque generating devices through the hybrid transmission to the driveline independently of the input member;

determining a rotational input acceleration of the input member based upon an inertial effect of the rotational speed of the output member of the hybrid transmission acting through the hybrid transmission upon the input member; and

individually compensating each of the first and second tractive torques from the torque generating devices to meet the operator torque request based upon the rotational input acceleration of the input member.

2. The method of claim 1 , further comprising:

determining a preferred input speed;

determining an inertial effect of the rotational speed of the output member of the hybrid transmission acting through the hybrid transmission upon the preferred input speed of the input member;

adjusting input power based upon the inertial effect upon the preferred input speed of the input member; and

controlling torque outputs from the torque generating devices based upon the adjusted input power.

3. The method of claim 1 , further comprising:

determining a preferred input speed;

determining acceleration of the output member based upon the rotational speed of the output member; and

determining the rotational input acceleration of the input member based upon the acceleration of the output member, a time-based derivative of the operator torque request, a partial derivative of the preferred input speed with respect to the rotational speed of the output member, and a partial derivative of the preferred input speed with respect to the operator torque request.

4. The method of claim 3 , wherein the rotational input acceleration of the input member comprises a sum of a product of the acceleration of the output member and the rate the preferred input speed changes with respect to the rotational speed of the output member, and a product of the time-based derivative of the operator torque request and a rate the preferred input speed changes with respect to the operator torque request.

5. The method of claim 3 , further comprising iteratively generating a pair of parametric values for the rotational speed of the output member and the operator torque request for a predetermined number of iterations;

determining a plurality of preferred input speeds for each of the iteratively generated pair of parametric values;

determining the partial derivative of the preferred input speed with respect to the rotational speed of the output member for each of the iteratively generated pairs of parametric values based upon a corresponding preferred input speed and a change in rotational speed of the output member over a predetermined time interval; and

determining the partial derivative of the preferred input speed with respect to the operator torque request for each of the iteratively generated pairs of parametric values based upon a corresponding preferred input speed and a change in the operator torque request over a predetermined time interval.

6. The method of claim 5 , further comprising:

storing the plurality of the preferred input speeds in a first lookup table;

storing each of the partial derivatives of the preferred input speed changes with respect to the rotational speed of the output member in a second lookup table according to corresponding iteratively generated pairs of parametric values; and

storing each of the partial derivatives of the preferred input speed changes with respect to the operator torque request in a third lookup table according to corresponding iteratively generated pairs of parametric values.

7. The method of claim 6 , wherein the first, second and third lookup tables are indexed by the iteratively generated pairs of parametric values.

8. The method of claim 6 , further comprising:

locating a pair of parametric values corresponding to the rotational speed of the output member and the operator torque request in the second and third lookup tables;

determining the rate the preferred input speed changes with respect to the rotational speed of the output member corresponding to the located pair of parametric values; and

determining the rate the preferred input speed changes with respect to the operator torque request corresponding to the located pair of parametric values.

9. The method of claim 1 , further comprising:

determining a preferred input speed;

determining acceleration of the output member based upon the rotational speed of the output member;

determining output power of the output member; and

determining the rotational input acceleration of the input member based upon the acceleration of the output member, a partial derivative of the preferred input speed with respect to the rotational speed of the output member, a time-based derivative of the output power, and a partial derivative of the preferred input speed with respect to the output power.

10. The method of claim 9 , further comprising:

determining a product of the time-based derivative of the output power and the partial derivative of the preferred input speed with respect to the output power; and

adding said product with a product of a difference between the partial derivative of the preferred input speed with respect to the rotational speed of the output member and a product of the operator torque request and the partial derivative of the preferred input speed with respect to the output power and the acceleration of the output member.

11. The method of claim 10 , further comprising

iteratively generating a pair of parametric values for the rotational speed of the output member and the operator torque request for a predetermined number of iterations;

determining a plurality of preferential input speeds for each of the iteratively generated pair of parametric values;

determining the partial derivative of the preferred input speed with respect to the rotational speed of the output member for each of the iteratively generated pairs of parametric values based upon a corresponding preferred input speed and a change in rotational speed of the output member over a predetermined time interval; and

determining the partial derivative of the preferred input speed with respect to the output power for each of the iteratively generated pairs of parametric values based upon a corresponding preferred input speed and a change in the output power over a predetermined time interval.

12. The method of claim 11 , further comprising:

storing the plurality of the preferred input speeds in a first lookup table;

storing each of the determined rate the preferred input speed changes with respect to the rotational speed of the output member in a second lookup table according to corresponding iteratively generated pairs of parametric values; and

storing each of the determined rate the preferred input speed changes with respect to the output power in a third lookup table according to corresponding iteratively generated pairs of parametric values.

13. The method of claim 12 , wherein the first, second and third lookup tables are indexed by the iteratively generated pairs of parametric values.

14. The method of claim 12 , further comprising:

locating a pair of parametric values corresponding to the rotational speed of the output member and the output power in the second and third lookup tables;

determining the rate the preferred input speed changes with respect to the rotational speed of the output member corresponding to the located pair of parametric values; and

determining the rate the preferred input speed changes with respect to the output power corresponding to the located pair of parametric values.

15. Method for controlling a powertrain system including an engine coupled to an input member of an electro-mechanical transmission device including electric machines and an energy storage device connected thereto, the electro-mechanical transmission device selectively operative in one of a plurality of operating range states to transfer power between the input member and an output member of the transmission device connected to a driveline and the electric machines, the method comprising:

operating the transmission device comprising a planetary gear set in a continuously variable operating range state;

monitoring an operator torque request and a rotational speed of the output member of the transmission device connected to the driveline;

providing a first tractive torque from the engine through the input member and the transmission device to the driveline;

providing a second tractive torque from one of the electric machines through the transmission device to the driveline independently of the input member;

determining a rotational input acceleration of the input member based upon an inertial effect of the rotational speed of the output member of the transmission device acting through the transmission device upon the input member; and

individually compensating each of the first and second tractive torques to meet the operator torque request based upon the rotational input acceleration of the input member.

16. The method of claim 15 , further comprising:

determining a preferred input speed;

determining an inertial effect of the rotational speed of the output member of the transmission device acting through the transmission device upon the preferred input speed of the input member;

adjusting input power based upon the inertial effect upon the preferred input speed of the input member; and

controlling motor torque outputs from the electric machines to meet the operator torque request based upon the adjusted input power.

17. The method of claim 15 , further comprising:

determining a preferred input speed;

determining acceleration of the output member based upon the rotational speed of the output member;

determining the rotational input acceleration of the input member based upon the acceleration of the output member, a time-based derivative of the operator torque request, a partial derivative of the preferred input speed with respect to the rotational speed of the output member, and a partial derivative of the preferred input speed with respect to the operator torque request.

18. The method of claim 15 , further comprising:

determining acceleration of the output member based upon the rotational speed of the output member;

determining output power of the output member; and

determining the rotational input acceleration of the input member based upon the acceleration of the output member, a partial derivative of the preferred input speed with respect to the rotational speed of the output member, a time-based derivative of the output power, and a partial derivative of the preferred input speed with respect to the output power.

19. The method of claim 18 , further comprising:

determining a product of the time-based derivative of the output power and the partial derivative of the preferred input speed with respect to the output power;

adding said product with a product of a difference between the partial derivative of the preferred input speed with respect to the rotational speed of the output member and a product of the operator torque request and the partial derivative of the preferred input speed with respect to the output power and the acceleration of the output member;

iteratively generating a pair of parametric values for the rotational speed of the output member and the operator torque request for a predetermined number of iterations;

determining a plurality of preferential input speeds for each of the iteratively generated pair of parametric values;

determining the partial derivative of the preferred input speed with respect to the rotational speed of the output member for each of the iteratively generated pairs of parametric values based upon a corresponding preferred input speed and a change in rotational speed of the output member over a predetermined time interval; and

determining the partial derivative of the preferred input speed with respect to the output power for each of the iteratively generated pairs of parametric values based upon a corresponding preferred input speed and a change in the output power over a predetermined time interval.

20. The method of claim 19 , further comprising:

storing the plurality of the preferred input speeds in a first lookup table;

storing each of the partial derivatives of the preferred input speed changes with respect to the rotational speed of the output member in a second lookup table according to corresponding iteratively generated pairs of parametric values; and

storing each of the partial derivatives of the preferred input speed changes with respect to the output power in a third lookup table according to corresponding iteratively generated pairs of parametric values.

Assignments (18)
MASTER TRANSACTION AGREEMENT Recorded Mar 8, 2016
From: CHRYSLER LLC
To: NEW CARCO ACQUISITION LLC
Reel/Frame 038031/0127 →
CHANGE OF NAME Recorded Mar 8, 2016
From: NEW CARCO ACQUISITION LLC
To: CHRYSLER GROUP LLC
Reel/Frame 038032/0799 →
CHANGE OF NAME Recorded Mar 8, 2016
From: CHRYSLER GROUP LLC
To: FCA US LLC
Reel/Frame 038033/0025 →
CHANGE OF NAME Recorded Apr 30, 2015
From: CHRYSLER GROUP LLC
To: FCA US LLC
Reel/Frame 035553/0356 →
RELEASE OF SECURITY INTEREST Recorded Nov 7, 2014
From: WILMINGTON TRUST COMPANY
To: GM GLOBAL TECHNOLOGY OPERATIONS LLC
Reel/Frame 034189/0065 →
CHANGE OF NAME Recorded Feb 10, 2011
From: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
To: GM GLOBAL TECHNOLOGY OPERATIONS LLC
Reel/Frame 025781/0211 →
SECURITY AGREEMENT Recorded Nov 8, 2010
From: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
To: WILMINGTON TRUST COMPANY
Reel/Frame 025324/0515 →
RELEASE OF SECURITY INTEREST Recorded Nov 5, 2010
From: UAW RETIREE MEDICAL BENEFITS TRUST
To: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
Reel/Frame 025315/0046 →
RELEASE OF SECURITY INTEREST Recorded Nov 4, 2010
From: UNITED STATES DEPARTMENT OF THE TREASURY
To: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
Reel/Frame 025245/0909 →
SECURITY AGREEMENT Recorded Aug 28, 2009
From: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
To: UAW RETIREE MEDICAL BENEFITS TRUST
Reel/Frame 023162/0237 →
SECURITY AGREEMENT Recorded Aug 27, 2009
From: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
To: UNITED STATES DEPARTMENT OF THE TREASURY
Reel/Frame 023156/0313 →
RELEASE OF SECURITY INTEREST Recorded Aug 21, 2009
From: UNITED STATES DEPARTMENT OF THE TREASURY
To: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
Reel/Frame 023126/0914 →
RELEASE OF SECURITY INTEREST Recorded Aug 21, 2009
From: CITICORP USA, INC. AS AGENT FOR BANK PRIORITY SECURED PARTIES; CITICORP USA, INC. AS AGENT FOR HEDGE PRIORITY SECURED PARTIES
To: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
Reel/Frame 023155/0769 →
SECURITY AGREEMENT Recorded Apr 16, 2009
From: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
To: CITICORP USA, INC. AS AGENT FOR BANK PRIORITY SECURED PARTIES; CITICORP USA, INC. AS AGENT FOR HEDGE PRIORITY SECURED PARTIES
Reel/Frame 022554/0538 →
SECURITY AGREEMENT Recorded Feb 4, 2009
From: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
To: UNITED STATES DEPARTMENT OF THE TREASURY
Reel/Frame 022201/0405 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 27, 2009
From: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
To: GM GLOBAL TECHNOLOGY OPERATIONS, INC.; DAIMLER AG; CHRYSLER LLC; BAYERISCHE MOTOREN WERKE AKTIENGESELLSCHAFT
Reel/Frame 022163/0249 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 8, 2009
From: KIM, KEE YONG
To: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
Reel/Frame 022080/0011 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 20, 2008
From: HEAP, ANTHONY H.
To: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
Reel/Frame 021560/0456 →